The density of uranium hexafluoride is to be calculated at 60 ∘ C and 745 torr. (The boiling point of UF 6 is 56 ∘ C ) Concept introduction: Boiling point is the temperature at which the liquid compound will boil and transform to gaseous state. Molecular mass of compound is sum of atomic mass of each atoms constituted in the compound. Equation for density is, Density = Mass Volume According to ideal gas equation, Pressure × Volume = Mass × R × Temperature Molecular mass Ideal gas equation in terms of Density, Density = Pressure × Molecular mass R × Temperature
The density of uranium hexafluoride is to be calculated at 60 ∘ C and 745 torr. (The boiling point of UF 6 is 56 ∘ C ) Concept introduction: Boiling point is the temperature at which the liquid compound will boil and transform to gaseous state. Molecular mass of compound is sum of atomic mass of each atoms constituted in the compound. Equation for density is, Density = Mass Volume According to ideal gas equation, Pressure × Volume = Mass × R × Temperature Molecular mass Ideal gas equation in terms of Density, Density = Pressure × Molecular mass R × Temperature
Solution Summary: The author explains that the density of uranium hexafluoride is 12.6 g/L. The boiling point is the temperature at which the liquid compound will boil and transform to gaseous state.
Draw the Fischer projection of D-fructose.
Click and drag to start drawing a
structure.
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Consider this step in a radical reaction:
Y
What type of step is this? Check all that apply.
Draw the products of the step on the right-hand side of the drawing area
below. If more than one set of products is possible, draw any set.
Also, draw the mechanism arrows on the left-hand side of the drawing
area to show how this happens.
ionization
propagation
initialization
passivation
none of the above
22.16 The following groups are ortho-para directors.
(a)
-C=CH₂
H
(d)
-Br
(b)
-NH2
(c)
-OCHS
Draw a contributing structure for the resonance-stabilized cation formed during elec-
trophilic aromatic substitution that shows the role of each group in stabilizing the
intermediate by further delocalizing its positive charge.
22.17 Predict the major product or products from treatment of each compound with
Cl₁/FeCl₂-
OH
(b)
NO2
CHO
22.18 How do you account for the fact that phenyl acetate is less reactive toward electro-
philic aromatic substitution than anisole?
Phenyl acetate
Anisole
CH
(d)
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